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A Robust FLOM Based Spectrum Sensing Scheme under Middleton Class A Noise in IoT

机译:IOT中MIDDLETON类噪声下基于FLOM的基于频谱传感方案

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摘要

Accessibility to remote users in dynamic environment, high spectrum utilization, and no spectrum purchase make Cognitive Radio (CR) a feasible solution of wireless communications in the Internet of Things (IoT). Reliable spectrum sensing becomes the prerequisite for the establishment of communication between IoT-capable objects. Considering the application environment, spectrum sensing not only has to cope with man-made impulsive noises but also needs to overcome noise fluctuations. In this paper, we study the Fractional Lower Order Moments (FLOM) based spectrum sensing method under Middleton Class A noise and incorporate a Noise Power Estimation (NPE) module into the sensing system to deal with the issue of noise uncertainty. Moreover, the NPE process does not need noise-only samples. The analytical expressions of the probabilities of detection and the probability of false alarm are derived. The impact on sensing performance of the parameters of the NPE module is also analyzed. The theoretical analysis and simulation results show that our proposed sensing method achieves a satisfactory performance at low SNR.
机译:对动态环境中远程用户的可访问性,高频谱利用率,无频谱购买使认知无线电(CR)在物联网(IOT)中的无线通信可行解决方案。可靠的频谱感测成为能够在机器上的物体之间建立通信的先决条件。考虑到申请环境,光谱感应不仅必须应对人造脉冲噪声,而且需要克服噪声波动。在本文中,我们研究了Middleton类噪声下的基于分数的频率(FLOM)的频谱感测方法,并将噪声功率估计(NPE)模块结合到传感系统中,以处理噪声不确定性问题。此外,NPE过程不需要仅噪声样本。导出了检测概率的分析表达和误报的概率。还分析了对NPE模块参数的感测性能的影响。理论分析和仿真结果表明,我们所提出的传感方法在低SNR处实现了令人满意的性能。

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